Bridging between macroscopic behavior of shale gas reservoirs and confined fluids in nanopores

被引:13
|
作者
Tien Dung Le [1 ]
Murad, Marcio A. [1 ]
Pereira, Patricia A. [1 ]
Boutin, Claude [2 ]
机构
[1] Lab Nacl Comp Cient LNCC MCT, Ave Getulio Vargas 333, BR-25651070 Petropolis, RJ, Brazil
[2] ENTPE, Dept Genie Civil & Batiment, Ecole Natl Travaux Publ Etat, Rue Maurice Audin, F-69518 Vaulx En Velin, France
关键词
Shale Gas; Pressure Equation; Reiterated Homogenization; Adsorption in Nanopores; Thermodynamics of Inhomogeneous Gases; Density Functional Theory; DENSITY-FUNCTIONAL THEORY; PERMEABILITY; FLOW; MULTISCALE; ADSORPTION; SIMULATION;
D O I
10.1007/s10596-015-9511-x
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
The macroscopic behavior of gas flow in multi-porosity shale gas reservoirs is rigorously derived within the framework of the reiterated homogenization procedure in conjunction with the Thermodynamics of Inhomogeneous Gases in nanopores. At the nanoscale, the Density Functional Theory is applied to reconstruct general adsorption isotherms and local density profiles of pure methane in the intraparticle porosity of the gas-wet organic matter. The description of adsorption incorporates both repulsive hard sphere effects and Lennard-Jones attractive intermolecular interactions between fluid-fluid supplemented by a fluid-solid exterior potential. Such local description reproduces the monolayer surface adsorption ruled by the Langmuir isotherm in the asymptotic regime of large pore size distributions. The nanoscopic model is upscaled to the microscale where kerogen particles and nanopores are viewed as overlaying continua forming the organic aggregates with adsorbed gas at local thermodynamic equilibrium with the free gas in the water partially saturated interparticle pores. The reaction/diffusion equation for pure gas movement in the kerogen aggregates is coupled with the Fickian diffusion of dissolved gas in the water phase and free gas Darcy flow in the adjacent interparticle pores which also lye in the vicinity of the inorganic solid phase (clay, quartz, calcite) assumed impermeable. By postulating continuity of fugacity between free and dissolved gas in the interparticle pores and neglecting the water movement, we upscale the microscopic problem to the mesoscale, where organic and inorganic matters along with interparticle pores are viewed as overlaying continua. The upscaling gives rise to a new nonlinear pressure equation for gas hydrodynamics in the interparticle pores including a new storativity coefficient dependent on water saturation, total organic carbon content (TOC), and intra- and interparticle porosities. When coupled with the nonlinear single phase gas flow in the hydraulic fractures, the homogenization of the mesoscopic model leads to a new microstructural model of triple porosity type with distributed mass transfer function between the different levels of porosity. Computational simulations illustrate the potential of the multiscale approach proposed herein in providing accurate numerical simulations of methane flow in shale gas reservoirs.
引用
收藏
页码:751 / 771
页数:21
相关论文
共 50 条
  • [1] Bridging between macroscopic behavior of shale gas reservoirs and confined fluids in nanopores
    Tien Dung Le
    Marcio A. Murad
    Patricia A. Pereira
    Claude Boutin
    Computational Geosciences, 2016, 20 : 751 - 771
  • [2] Critical properties and phase behavior of confined fluids in irregular nanopores of shale gas reservoir
    Hao, Yongmao
    Fu, Jingang
    Su, Yuliang
    Wang, Wendong
    Li, Lei
    Chen, Zhangxin
    GAS SCIENCE AND ENGINEERING, 2023, 116
  • [3] Transport Model for Gas and Water in Nanopores of Shale Gas Reservoirs
    Guo, Chaohua
    Sun, Jiwen
    Liu, Hongji
    JOURNAL OF ENERGY ENGINEERING, 2021, 147 (04)
  • [4] Distribution of a water film confined in inorganic nanopores in real shale gas reservoirs
    Fu, Jingang
    Su, Yuliang
    Chen, Zhangxing
    Li, Lei
    Wang, Wendong
    Zhan, Shiyuan
    JOURNAL OF PETROLEUM SCIENCE AND ENGINEERING, 2022, 209
  • [5] Model for Surface Diffusion of Adsorbed Gas in Nanopores of Shale Gas Reservoirs
    Wu, Keliu
    Li, Xiangfang
    Wang, Chenchen
    Yu, Wei
    Chen, Zhangxin
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (12) : 3225 - 3236
  • [6] A semianalytical model for simulating real gas transport in nanopores and complex fractures of shale gas reservoirs
    Wang, Weihong
    Yu, Wei
    Hu, Xiaohu
    Liu, Hua
    Chen, Youguang
    Wu, Kan
    Wu, Biyi
    AICHE JOURNAL, 2018, 64 (01) : 326 - 337
  • [7] Modeling transient pressure behavior of a fractured well for shale gas reservoirs based on the properties of nanopores
    Huang, Ting
    Guo, Xiao
    Chen, Feifei
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2015, 23 : 387 - 398
  • [8] A model for gas transport through nanopores of shale gas reservoirs
    Wu, Keliu
    Li, Xiangfang
    Chen, Zhangxing
    Shiyou Xuebao/Acta Petrolei Sinica, 2015, 36 (07): : 837 - 848and889
  • [9] A model forstress-dependenceof apparent permeability in nanopores of shale gas reservoirs
    Hatami, Mohammad
    Bayless, David
    Sarvestani, Alireza
    AICHE JOURNAL, 2020, 66 (10)
  • [10] A review of phase behavior simulation of hydrocarbons in confined space: Implications for shale oil and shale gas
    Liu, Xinyue
    Zhang, Dongxiao
    JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2019, 68